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高分辨率光学影像中阴影检测的不同方法评估以及阴影对归一化植被指数(NDVI)和蒸散量计算影响的评估。

Assessment of different methods for shadow detection in high-resolution optical imagery and evaluation of shadow impact on calculation of NDVI, and evapotranspiration.

作者信息

Aboutalebi Mahyar, Torres-Rua Alfonso F, Kustas William P, Nieto Héctor, Coopmans Calvin, McKee Mac

机构信息

Department of Civil and Environmental Engineering, Utah State University, Logan, UT, USA.

USDA-ARS, Hydrology and Remote Sensing Laboratory, Beltsville, MD, USA.

出版信息

Irrig Sci. 2018;1:1-23. doi: 10.1007/s00271-018-0613-9. Epub 2018 Dec 3.

Abstract

Significant efforts have been made recently in the application of high-resolution remote sensing imagery (i.e., sub-meter) captured by unmanned aerial vehicles (UAVs) for precision agricultural applications for high-value crops such as wine grapes. However, at such high resolution, shadows will appear in the optical imagery effectively reducing the reflectance and emission signal received by imaging sensors. To date, research that evaluates procedures to identify the occurrence of shadows in imagery produced by UAVs is limited. In this study, the performance of four different shadow detection methods used in satellite imagery was evaluated for high-resolution UAV imagery collected over a California vineyard during the Grape Remote sensing Atmospheric Profile and Evapotranspiration eXperiment (GRAPEX) field campaigns. The performance of the shadow detection methods was compared and impacts of shadowed areas on the normalized difference vegetation index (NDVI) and estimated evapotranspiration (ET) using the Two-Source Energy Balance (TSEB) model are presented. The results indicated that two of the shadow detection methods, the supervised classification and index-based methods, had better performance than two other methods. Furthermore, assessment of shadowed pixels in the vine canopy led to significant differences in the calculated NDVI and ET in areas affected by shadows in the high-resolution imagery. Shadows are shown to have the greatest impact on modeled soil heat flux, while net radiation and sensible heat flux are less affected. Shadows also have an impact on the modeled Bowen ratio (ratio of sensible to latent heat) which can be used as an indicator of vine stress level.

摘要

最近,人们在将无人机(UAV)拍摄的高分辨率遥感图像(即亚米级)应用于葡萄等高价值作物的精准农业方面付出了巨大努力。然而,在如此高的分辨率下,光学图像中会出现阴影,从而有效降低成像传感器接收到的反射率和发射信号。迄今为止,评估无人机生成的图像中阴影出现情况识别程序的研究有限。在本研究中,针对葡萄遥感大气剖面与蒸散实验(GRAPEX)野外活动期间在加利福尼亚葡萄园收集的高分辨率无人机图像,评估了卫星图像中使用的四种不同阴影检测方法的性能。比较了阴影检测方法的性能,并展示了阴影区域对归一化植被指数(NDVI)和使用双源能量平衡(TSEB)模型估算的蒸散量(ET)的影响。结果表明,其中两种阴影检测方法,即监督分类法和基于指数的方法,比其他两种方法具有更好的性能。此外,对葡萄树冠层中阴影像素的评估导致高分辨率图像中受阴影影响区域计算出的NDVI和ET存在显著差异。结果表明,阴影对模拟土壤热通量的影响最大,而净辐射和感热通量受影响较小。阴影还对模拟的鲍文比(感热与潜热之比)产生影响,该比值可作为葡萄胁迫水平的指标。

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